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Investigation of the optimal detector arrangement for the helmet-chin PET- A simulation study

机译:头盔式下巴PET最佳探测器布置的研究-仿真研究

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High sensitivity and high spatial resolution dedicated brain PET scanners are in high demand for early diagnosis of neurodegenerative diseases and studies of brain functions. To meet the demand, we have proposed the helmet-chin PET geometry which has a helmet detector and a chin detector. Our first prototype scanner used 54 4-layer depth-of-interaction (DOI) detectors. The helmet detector of the scanner had three detector rings with different radii arranged on a surface of a hemisphere (with a radius of 126.5 mm) and a top cover detector. Therefore, in this study, for our next development, we propose a spherical arrangement, in which the central axis of each detector points toward the center of the hemisphere, and we optimize the size of the detector crystal block to be arranged on the helmet detector. We simulate the spherical arrangement with the optimized crystal block size and compare its imaging performance with the multi-ring arrangement, which has a similar detector arrangement to that of our first prototype. We conduct Monte Carlo simulation to model the scanners having the 4-layer DOI detectors which consist of LYSO crystals. A dead space of 2 mm is assumed on each side of the crystal blocks such as for wrapping. The size of the crystal block is varied from 4x4 mm~2 to 54×54 mm~2 while fixing the thickness of the crystal block to 20 mm. We find that the crystal block sized at 42×42 mm~2 has the highest sensitivity for a hemispherical phantom. The comparison of the two arrangements with the optimized crystal blocks show that, for the same number of crystal blocks, the spherical arrangement has 17% higher sensitivity for the hemispherical phantom than the multi-ring arrangement. We conclude that the helmet-chin PET with the spherical arrangement constructed from the crystal block sized at 42×42×20 mm~3 has better imaging performance especially at the upper part of the brain compared to the multi-ring arrangement while keeping similar spatial resolution throughout the FOV.
机译:对于神经退行性疾病的早期诊断和脑功能研究,对高灵敏度和高空间分辨率的专用脑PET扫描仪的需求很高。为了满足需求,我们提出了具有头盔检测器和下巴检测器的头盔下巴PET几何形状。我们的第一台原型扫描仪使用了54个4层交互深度(DOI)检测器。扫描仪的头盔探测器具有三个半径不同的探测器环,分别布置在半球表面(半径为126.5毫米)和一个顶盖探测器。因此,在本研究中,对于我们的下一个发展,我们提出了一种球形布置,其中每个探测器的中心轴指向半球的中心,并且我们优化了要布置在头盔探测器上的探测器晶体块的尺寸。我们用优化的晶体块尺寸模拟球形排列,并将其成像性能与多环排列进行比较,后者与我们的第一个原型具有相似的检测器排列。我们进行蒙特卡洛模拟,以模拟具有由LYSO晶体组成的4层DOI检测器的扫描仪。假设在晶体块的每一侧(例如用于包裹)的死角为2 mm。在将晶体块的厚度固定为20mm的同时,晶体块的尺寸从4×4mm 2到54×54mm 2改变。我们发现尺寸为42×42 mm〜2的晶体块对半球形幻象的灵敏度最高。两种布置与优化的晶体块的比较表明,对于相同数量的晶体块,球形布置对半球形体模的灵敏度比多环布置高17%。我们得出的结论是,与多环排列相比,由42×42×20 mm〜3尺寸的晶体块构成的球形排列的头盔式PET具有更好的成像性能,尤其是在大脑的上部整个FOV的分辨率。

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